BACKGROUND OF THE INVENTION
[0001] This invention relates generally to contactless power supplies, and more specifically
to contactless power supplies capable of communicating with any devices receiving
power from the contactless power supplies.
[0002] Contactless energy transmission systems (CEETS) transfers electrical energy from
one device to another without any mechanical connection. Because there is no mechanical
connection, CEETS have many advantages over conventional energy systems. They are
generally safer because there is little danger of sparks or electric shocks due to
the isolation of the power supply. They also tend to have a longer life since there
are no contacts to become worn. Due to these advantages, CEETS have been used in everything
from toothbrushes to portable telephones to trains.
[0003] CEETS are composed of power supplies and remote devices. The remote device could
be chargeable devices such as batteries, micro-capacitors, or any other chargeable
energy source. Alternatively, CEETS could directly power the remote devices.
[0004] One kind of CEETS uses magnetic induction to transfer energy. Energy from a primary
winding in the power supply is transferred inductively to a secondary winding in the
chargeable device. Because the secondary winding is physically spaced from the primary
winding, the inductive coupling occurs through the air.
[0005] Without a physical connection between the primary winding and the secondary winding,
conventional feedback control is not present. Thus, control of the energy transfer
in a CEETS from the primary to the secondary is difficult.
[0006] One common solution is to design a CEETS dedicated to one type of device. For example,
a CEETS for a rechargeable toothbrush is designed only for recharging a toothbrush,
while a CEETS for a rechargeable telephone works only with a specific type of telephone.
While this solution allows the CEET to operate effectively with one particular device,
it fails to be sufficiently flexible to allow the power supply to operate with different
remote devices.
[0007] Further, since the remote device could be an electronic device capable of performing
various tasks, communication with the remote device is desirable. One such system
is described in
U.S. Patent No. 6,597,076, in which an actuator powered by a CEET communicates with a process computer in order
to provide information relating to up-to-date actuator information. The remote device
communicates with a transceiver located at a central processor. Direct communication
between the CEET and the actuator is not, however, provided.
[0008] In a system shown in
U.S. 5,455,466, a portable electronic device receives power from a CEET. Communication between a
computer and the portable electronic device is provided by way of the CEET. The CEET
acts as a pipeline between the portable electronic device and the computer. The CEET
does not obtain information related to the operation of the CEET from the remote device.
[0009] While these prior art systems do provide communication, they fail to provide a method
or means for the remote device to supply information which could be helpful to the
operation of the CEET. For example, a CEET with an adjustable power output could use
power requirements from the remote device to operate more efficiently by adjusting
its power output. Thus, enabling a CEET to communicate with a remote device in order
to obtain power requirements from that remote device is highly desirable.
[0010] WO0128629 A1 discloses methods and apparatus for providing a sufficiently stable power to a load
in an energy transfer system that transfers energy from one side of a physical boundary
to another side of the boundary. In one example, a power supply and a primary winding
are located on a first side of a physical boundary (e.g., external to a body), and
a secondary winding and the load are located on a second side of the physical boundary
(e.g., internal to the body). A primary voltage across the primary winding is regulated
so as to provide a sufficiently stable output power to the load notwithstanding changes
in the load and/or changes in a relative position of the primary winding and the secondary
winding.
[0011] WO0237641 A1 discloses a primary circuit which converts the received low frequency alternating
current to a high frequency alternating current signals and has a core with a main
winding for generating a magnetic field. Another core, not in contact with core and
made of a pair of ferrite sheets, is provided in the secondary circuit, to hold an
auxiliary winding to induce an AC signal from the magnetic field generated by the
main winding. The secondary circuit converts the induced AC signal to direct current
signal and then it is given to the rechargeable battery. The system includes a detection
and communication unit for detecting state information of the rechargeable battery
and wirelessly or optically outputting the detected information. The system further
includes a control circuit unit for receiving the detected information provided from
the detection and communication unit to operate and protect the primary circuit.
[0012] GB2347801 A describes an electric vehicle battery charger. The traction battery of the electrically
powered vehicle is charged via an inductive coupling between a primary inductive circuit,
energised from a supply via a rectifier and high frequency inverter, and a secondary
inductive circuit mounted on the vehicle and connected to the battery via a rectifier,
the charging system having means to compensate for misalignment between the primary
and secondary circuits. The operating frequency of the primary circuit is maintained
in a range from a selected resonance frequency of the primary circuit to a frequency
which is less than a selected resonance frequency of the secondary circuit. A remote
control arrangement including transceivers may be provided to maintain this condition.
Tunable capacitors may be provided in the primary and secondary circuits, the resonant
frequency of the secondary circuit may be established when the primary and secondary
circuits are optimally inductively coupled, and the capacitance may be adjusted so
that the primary circuit resonates at a frequency below the secondary circuit resonant
frequency.
SUMMARY OF THE INVENTION
[0013] The invention is defined by a contactless power system for transmitting power from
a contactless power supply to at least one remote device with the technical features
of independent claim 1.
[0014] A contactless power supply has a resonant circuit having a variable resonant frequency
and a primary winding for transferring power to a remote device. The contactless power
supply also may have a receiver for communicating with the remote device. The remote
device sends power information to the controller. The controller then modifies the
operation of the resonant circuit in response to the power information. Thus, the
controller can precisely calibrate the power supply for operation with the remote
device, providing high efficiency power transfer from the contactless power supply
to the remote device.
[0015] The contactless power supply could have an inverter and a power source in addition
to the resonant circuit coupled to the inverter. In order to achieve high efficiency
power transfer, the controller can modify the rail voltage of the power supply, the
frequency of operation of the inverter, the duty cycle of the inverter as well as
the resonant frequency of the resonant circuit.
[0016] The contactless power supply can also be provided with a memory for storing the power
information received from the remote device.
[0017] The contactless power supply could also operate with a number of remote devices.
The contactless power supply would then receiver power information from each of the
remote devices. In an embodiment which is not part of the scope of the invention,
the contactless power system, a list of the power information for each of the remote
devices is maintained. Based upon the list, the controller determines an optimal settings
for the rail voltage, resonant frequency or the duty cycle based upon the list. In
an embodiment which is not part of the scope of the invention, the contactless power
system may also have a communication interface for communicating with a workstation.
The controller would create a communication link between the workstation and the remote
device by way of a transceiver.
[0018] The remote device has a remote device controller and a secondary winding having a
secondary winding variable impedance. The remote device controller is capable of varying
the secondary winding variable impendence. The remote device has a remote device transceiver
for communicating with the contactless power supply. The remote device controller
varies the secondary winding variable impedance based upon information from the contactless
power supply. The remote device's controller could also disable the operation of the
remote device based upon information from the contactless power supply. Thus, the
remote device could also be operated at a high efficiency.
[0019] Thus, the system allows the optimization of both the power supply as well as the
device attached to the power supply.
[0020] The contactless power and remote devices operate by each remote device sending power
usage information to the controller and then adapting the contactless power supply
in response to the power usage information. The adaptation of the contactless power
supply includes changing the duty cycle, the inverter frequency, the resonant frequency,
or the rail voltage.
[0021] The power supply could also determine whether the contactless power supply is capable
of supplying power to the plurality of remote devices. If not, some of the remote
devices could be turned off.
[0022] The contactless power supply, the remote device, and the method of operating the
power supply and the remote device result in an extremely efficient and very adaptable
method of energizing a variety of devices from the power supply. By continually adapting
to the addition or removal of loads to the contactless power supply, the contactless
power supply remains highly efficient.
[0023] These and other objects, advantages and features of the invention will be more readily
understood and appreciated by reference to the detailed description of the drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
[0024]
FIG. 1 is a block diagram of an adaptive inductive ballast in accordance with one
embodiment of the present invention.
FIG. 2 is a schematic diagram of a resonance-seeking ballast marked to show changes
to incorporate the adaptive inductive ballast of the present invention.
FIG. 3 is a flow chart illustrating operation of the adaptive inductive ballast, such
operation not within the scope of the present invention.
FIG. 4 is a block diagram of an alternative embodiment incorporating RF This embodiment
is not covered by the scope of the present invention.
FIG. 5 is a flow chart illustrating operation of the adaptive inductive ballast incorporating
communications capability, in an embodiment not covered by the scope of the present
invention.
FIG. 6 shows a contactless energy transmission system connected to a remote device
and a workstation.
FIG. 7 is a block diagram for an adaptive contactless energy transmission system with
communications capability.
FIG. 8 is a block diagram of a remote device with communications capability.
FIG. 9 is a flow chart showing the operating of an adaptive contactless energy transmission
system. This embodiment is not covered by the scope of the present invention.
FIG. 10 is an exemplary list of remote devices powered by a contactless power supply
with communications capability.
DETAILED DESCRIPTION OF THE DRAWINGS
[0025] A block diagram showing the general construction of an adaptive inductive ballast
10 in accordance with one embodiment of the present invention is shown in FIG. 1.
As illustrated, the adaptive inductive ballast 10 generally includes a microprocessor
12 that controls operation of the circuit, a multi-tap primary 14 for generating a
magnetic field, a wave shaper and drive subcircuit 16 that generates the signal applied
to the primary 14, a current sense subcircuit 18 that monitors the signal applied
to the primary 14 and provides corresponding feedback to the microprocessor 12, a
capacitance switch 20 for adjusting the capacitance values in the wave shaper and
drive subcircuit 16, and an inductance switch 22 for adjusting the inductance of the
multi-tap primary 14. The microprocessor is a conventional microprocessor widely available
from a variety of suppliers.
[0026] The capacitance switch 20 generally includes two banks of capacitors and a plurality
of switches, such as transistors, that are selectively actuatable by the microprocessor
12 to control the values of the two capacitor banks. The capacitors in each bank can
be arranged in series or parallel depending on the desired range and distribution
of possible capacitance values. The first bank of capacitors replace capacitor 271.
Similarly, the second back of capacitors replace capacitor 272 of the pre-existing
resonance-seeking ballast. In effect, the capacitance switch 20 makes capacitors 271
and 272 from the pre-existing resonance-seeking ballast into variable capacitors,
the values of which are controlled by the microprocessor 12. Alternatively, the described
capacitance switch 20 can be replaced by other circuitry capable of providing variable
capacitance.
[0027] The inductance switch 22 generally includes a multi-tap primary 14 and a plurality
of switches, such as transistors, that are selectively actual by the microprocessor
12 to control the values of the inductance of the primary 14. The multi-tap primary
14 replaces primary 270 of the pre-existing resonance-seeking ballast. In effect,
the inductance switch 22 makes primary 270 from the pre-existing resonance-seeking
ballast into a variable inductance coil by varying the number of turns in the primary
14, the value of which is controlled by the microprocessor 12. Alternatively, the
described inductance switch 22 can be replaced by other circuitry capable of providing
variable inductance.
[0028] In general operation, the microprocessor 12 is programmed to receive input from the
current sense subcircuit 18, which is indicative of the current applied to the primary
14. The microprocessor 12 is programmed to separately adjust the capacitance switch
20 and the inductance switch 22 to cycle through the range of capacitance values and
inductance values available to the circuit. The microprocessor 12 continues to monitor
the input from the current sense circuit 18 while adjusting the capacitance and inductance
values to determine which values provide optimum current to the primary 14. The microprocessor
12 then locks the adaptive ballast into the optimum settings.
[0029] Some of the changes required to adapt the resonance-seeking inductive ballast are
noted in the schematic diagram of FIG. 2. A ballast feedback circuit is connected
at point A and a control circuit is connected at point B. Oscillator 144 provides
half bridge inverter 148 with an alternating signal by way of drive 146. Half bridge
inverter powers tank circuit 150. Current sensing circuit 218 provides feedback to
oscillator 144.
[0030] In FIG. 2, a phase delay could be inserted at E and can be controlled as a delay
line. This delay can be used to throttle the phase and control secondary amplitude.
At F, switched capacitance can adjust the resonant frequency based on the adjustable
primary inductance. Simple transistors can be used to switch in and out capacitance.
The capacitance is changed when the primary inductor changes as to match load. At
G, primary inductance can be switched to adjust the power required by the secondary
circuit RFID or direct communications can indicate the needed load. With that load
information, the control processor can adjust the inductance as needed to provide
the power required. The inductance can be switched using transistors and multiple
taps from the primary inductor controlled by the microprocessor.
[0031] According to an embodiment not covered by the scope of the present invention, the
operating sequence of the adaptive inductive ballast circuit is described in more
detail in connection with FIG. 3. In operation, the illustrated system waits until
it determines that a load is present before applying power to the primary 14. This
will save power and may be done by providing each inductively powered device with
a magnet that actuates a reed switch adjacent to the primary. Alternatively, a user-actuated
switch (not shown) may be provided so that the user can engage the power supply when
an inductively powered device is present. As another alternative, the inductively
powered device may be configured to mechanically actuate a switch when it is placed
into proximity with the primary to signal its presence. As a further alternative,
the switching mechanism can be eliminated and the ballast circuit can provide power
to the primary 14 regardless of the presence of a load.
[0032] Once the power supply circuit is activated, the circuit adjusts its frequency to
optimize the current applied to the primary. After the appropriate operating frequency
has been determined at initial capacitance and inductance values, the microprocessor
locks the ballast circuit into the operating frequency and then begins to cycle through
the range of inductance values available through the multi-tap primary. After each
change in inductance value, the microprocessor unlocks the operating frequency and
permits the ballast circuit to seek resonance, settling at a frequency that provides
optimal current to the primary. The microprocessor continues cycling through the available
inductance values until it has determined which value provides optimal current to
the primary. In one embodiment, a progressive scanning process is used to determine
the appropriate inductance value. This is achieved by starting the scanning process
with the lowest inductance value, and sequentially stepping up the inductance value
until the change in inductance value results in a reduction in the current applied
to the primary. The microprocessor will then step back down one inductance value,
where the greatest current was achieved. Alternatively, the scanning process may begin
with the highest inductance value, and sequentially step down the inductance value
until the change in inductance value results in a reduction in the current applied
to the primary. The microprocessor will then step back up one inductance value, where
the greatest current was achieved. As another alternative, the microprocessor can
step through each inductance value to determine the corresponding current, and after
stepping through each value, return to the inductance value that provided the greatest
current to the primary.
[0033] After the appropriate inductance value is determined, the microprocessor locks the
circuit at the determined inductance value and begins to cycle through the capacitance
values. In one embodiment, the microprocessor uses a progressive scanning technique
to determine the capacitance that provides the primary with the greatest current The
scanning process may progress upwardly from the lowest capacitance value or downwardly
from the highest capacitance value, as described above in connection with the scanning
process for the inductance value. As an alternative to a progressive scanning process,
the microprocessor can step through each capacitance value to determine the corresponding
current, and after stepping through each value, return to the capacitance value that
provided the greatest current to the primary.
[0034] In this embodiment, the frequency of the ballast circuit is not permitted to vary
once the appropriate inductance value has been determined. The microprocessor can,
alternatively, be programmed to permit the ballast circuit to seek resonance after
each change in capacitance value.
[0035] In an alternative embodiment, the microprocessor may be programmed to provide adjustment
of only the capacitance value or only the inductance value of the power supply circuit.
In the former alternative, the multi-tap primary can be replaced by a conventional
single-tap primary and the inductance switch can be eliminated. In the latter alternative,
the capacitor bank can be replaced by a single set of capacitors and the capacitance
switch can be eliminated. In another alternative embodiment, the microprocessor can
be programmed to adjust the capacitance before adjusting the inductance.
[0036] As noted above, the present invention is not limited to use in connection with a
resonance-seeking ballast. In other applications, a current sensor may be incorporated
into the ballast to provide input to the microprocessor that is representative of
the current being applied to the primary. In operation without a resonance-seeking
ballast, the microprocessor will separately cycle through the various capacitance
and inductance values to determine the values that provide optimum power to the primary.
[0037] In a further alternative embodiment, the adaptive inductive ballast 10 may include
phase delay circuitry (not shown) that permits the ballast 10 to throttle the phase
and control secondary amplitude. The phase delay circuitry may include a delay line
or a Digital Signal Processor (DSP) that is connected to the wave shaper and drive
circuit 16 following the operational amplifier 210.
[0038] A further alternative embodiment not covered by the scope of the present invention
is described in connection with FIGs. 4-5. In this embodiment, the adaptive inductive
ballast 10' and the inductively powered device have the ability to communicate, for
example, using conventional RF communications or direct communications.
[0039] FIG. 4 is a block diagram showing the general components of the adaptive inductive
ballast 10'. The adaptive inductive ballast 10' includes a communication coil (not
shown) that is separate from the switched primary inductance and primary coil 22'.
The communication coil could be part of the primary. The communication coil is connected
to the microprocessor 12', which is programmed to receive the information from the
inductively powered device and to effect operation of the adaptive inductive ballast
10' based on that information. The inductively powered device also includes a communication
coil that could be separate from or integral with the secondary that receives power
from the primary. The inductively powered load and the adaptive inductive power supply
10' communicate using conventional communications techniques and apparatus, for example,
using standard communications circuitry and standard communications protocol.
[0040] Operation of the adaptive ballast 10' is generally identical to that of ballast 10
described above, except as noted below. A flow chart showing the general steps of
operation of the ballast 10' is show in FIG. 5. Through the use of its communications
capability, the inductively powered device can relay load information to the adaptive
inductive ballast 10', such as the wattage of the load. The adaptive inductive ballast
10' can use this information in determining the appropriate capacitance and inductance
values. More specifically, this information can be used to ensure that the primary
of switched primary inductance and primary coil 22' is operating at the correct wattage.
If not, the switched primary inductance of switched primary inductance and primary
coil 22' and capacitance switch 20' can be used to adjust the wattage of the primary.
This embodiment may, in some applications, provide improved operation over adaptive
inductive ballast 10 described above because it does not necessarily drive the primary
at its highest possible current value. Instead, this embodiment matches the power
output of the primary to the power requirements of the inductively powered device,
meaning that it may reduce power and save energy when full power is not required.
[0041] The aforementioned system of FIGs. 1-5 is further enhanced and explained with reference
to FIGs. 6-9.
[0042] FIG. 6 shows an adaptive contactless energy transmission system incorporating one
embodiment which is not covered by the scope of the present invention. Contactless
power supply 305 is inductively coupled to remote device 306. Contactless power supply
305 is also connected to workstation 307. Network 308 is, in turn, connected to workstation
307.
[0043] In one embodiment, contactless power supply 305 establishes a communication link
between workstation 307 and remote device 306, allowing information to be transmitted
to and from remote device 306. If remote device 306 were a PDA (personal digital assistant),
information from the PDA could be exchanged with workstation 307. For example, a PDA
could automatically synchronize a calendar and an address list while the PDA was charging.
As another example, if remote device 306 were an MP3 player, then songs could be downloaded
to and from the MP3 player while the MP3 player was charging.
[0044] FIG. 7 shows a block diagram for an embodiment of an adaptive contactless energy
transmission system with communication for communicating with a plurality of remote
devices.
[0045] The adaptive contactless energy transmission system has contactless power supply
305 and remote device 338, 340, 342.
[0046] As is well know, power source 310 is a DC power source providing DC (direct current)
power to inverter 312. Inverter 312 converts the DC power to AC (alternating current)
power. Inverter 312 acts as an AC power source supplying the AC power to tank circuit
314. Tank circuit 314 is a resonant circuit. Tank circuit 314 is inductively coupled
to secondary winding 316 of remote device 338.
[0047] The secondary windings of remote devices 338, 340, 342 have no core. Dashed line
320 indicates an air gap between remote devices 338, 340, 342 and power supply 305.
[0048] Circuit sensor 324 is coupled to the output of tank circuit 314. Circuit sensor 324
is also coupled to controller 326. Circuit sensor 324 provides information regarding
the operational parameters of the power supply. For example, circuit sensor could
be a current sensor and provide information regarding the phase, frequency and amplitude
of the current in tank circuit 314.
[0049] Controller 326 could be any one of a multitude of commonly available microcontrollers
programmed to perform the functions hereinafter described, such as the Intel 8051
or the Motorola 6811, or any of the many variants of those microcontrollers. Controller
326 could have a ROM (read only memory) and RAM (random access memory) on the chip.
Controller 326 could have a series of analog and digital outputs for controlling the
various functions within the adaptive inductive power supply.
[0050] Controller 326 is connected to memory 327. Controller 326 is also coupled to drive
circuit 328. Drive circuit 328 regulates the operation of inverter 312. Drive circuit
328 regulates the frequency and timing of inverter 312. Controller 326 is also coupled
to power source 310. Controller 326 can manipulate the rail voltage of power source
310. As is well known, by altering the rail voltage of power source 310, the amplitude
of the output of inverter 312 is also altered.
[0051] Finally, controller 326 is coupled to variable inductor 330 and variable capacitor
332 of tank circuit 314. Controller 326 can modify the inductance of variable inductor
330 or the capacitance of variable capacitor 332. By modifying the inductance of variable
inductor 330 and the capacitance of variable capacitor 332, the resonant frequency
of tank circuit 314 can be changed.
[0052] Tank circuit 314 could have a first resonant frequency and a second resonant frequency.
Tank circuit 314 could also have several resonant frequencies. As used herein, the
term "resonant frequency" refers to a band of frequencies within which tank circuit
314 will resonate. As is well known, a tank circuit will have a resonant frequency,
but will continue to resonate within a range of frequencies. Tank circuit 314 has
at least one variable impedance element having a variable impedance. By varying the
variable impedance, the resonant frequency of the tank circuit will be varied. The
variable impedance element could be variable inductor 330 or variable capacitor 332,
or both.
[0053] Variable inductor 330 could be a thyristor controlled variable inductor, a compressible
variable inductor, parallel laminated core variable inductor, a series of inductors
and switches capable of placing select fixed inductors into tank circuit 314, or any
other controllable variable inductor. Variable capacitor could be a switched capacitor
array, a series of fixed capacitors and switches capable of placing select fixed capacitors
into tank circuit 314, or any other controllable variable capacitor.
[0054] Tank circuit 314 also includes primary winding 334. Primary winding 334 and variable
inductor 330 are shown separate. Alternatively, primary winding 334 and variable inductor
330 could be combined into a single element Tank circuit 314 is shown as a series
resonant tank circuit. A parallel resonant tank circuit could also be used.
[0055] Power supply transceiver 336 is also coupled to controller. Power supply transceiver
336 could be simply a receiver for receiving information rather than a device enabling
two-way communication. Power supply transceiver 336 communicates with various remote
device 338, 340, 342. Obviously, more or less devices than three could be used with
the system.
[0056] In this embodiment, contactless power supply 305 also has communication interface
311 for connection to workstation 307. Communication interface 311 could be any of
a number of well known or proprietary interfaces such as USB, firewire, or RS-232.
Workstation 307 is connected to network 308. Network 308 could be a LAN (local area
network) or the Internet.
[0057] Contactless power supply 305 could also have communication controller 313. Communication
controller 313 manages data input and output through communication interface 311 and
power supply transceiver 336. Communication controller 313 performs necessary control
functions such as code conversion, protocol conversion, buffering, data compression,
error checking, synchronization and route selection as well as collects management
information. Communication controller 313 establishes communication sessions between
remote devices 338, 340, 342 and workstation 307 or any other devices within network
308. Communication controller 313 could be a front end processor. Depending upon the
capabilities of controller 326, communication controller 313 could be a software module
running within controller 326.
[0058] FIG. 8 shows a block diagram of remote device 338. Remote device 338 is exemplary
of remote devices 340, 342 as well. Remote device 338 includes load 350. Load 350
receives power from variable secondary 353. Load 350 could be a rechargeable battery
or any other kind of load.
[0059] Variable secondary 353 is preferably coreless, allowing variable secondary 353 to
operate over a wider range of frequencies. Variable secondary 353 is shown as a variable
inductor, although other types of devices could be used in place of the variable inductor.
[0060] Remote device controller 352 controls the inductance of variable secondary 353 and
the operation of load 350. For example, remote device controller 352 can alter the
inductance of variable secondary 353 or turn on or offload 350. Similar to controller
326, remote device controller 352 could be any one of a multitude of commonly available
microcontrollers programmed to perform the functions hereinafter described, such as
the Intel 8051 or the Motorola 6811, or any of the many variants of those microcontrollers.
Controller 352 could have a ROM (read only memory) and RAM (random access memory)
on the chip. Controller 352 could also have a series of analog and digital outputs
for controlling the various functions within the adaptive inductive power supply.
[0061] Memory 354 contains, among other things, a device ID (identification) number and
power information about remote device 338. Power information would include the voltage,
current and power consumption information for remote device 338. If load 350 were
a rechargeable battery, memory 354 might include discharge rates and charging rates.
[0062] Remote device 338 also includes remote transceiver 356. Remote transceiver 356 receives
and transmits information to and from power supply transceiver 336. Remote transceiver
356 and power supply transceiver 336 could be linked in a myriad of different ways,
such as WIFI, infrared, blue tooth, or cellular. Additionally, the transceivers could
communicate by way of additional coils on the primary or secondary. Or, since power
in being delivered by power supply 305 to remote devices 338, 340, 342, by any one
of many different power line communication systems.
[0063] Alternatively, remote transceiver 356 could be simply a wireless transmitter for
sending information to transceiver 336. For example, remote transceiver 356 could
be an RFID (Radio Frequency Identification) tag.
[0064] Processor 357 represents the functional component of remote device 338. For example,
if remote device 338 were a digital camera, processor 357 could be a microprocessor
within the digital camera. If remote device 338 were an MP3 player, processor 357
could be a digital signal processor or a microprocessor and related circuitry for
converting MP3 files into sounds. If remote device 338 were a PDA, then processor
357 would be a microprocessor and related circuitry providing the functionality of
a PDA. Processor 357 could access memory 3 54.
[0065] Processor 357 is also coupled to secondary device transceiver 356. Thus, processor
357 could communicate through secondary device transceiver 356 with contactless power
supply 305, and thereby could communicate with any other devices connected to power
supply 305, such as a workstation.
[0066] Due to the presence of communication interface 311, remote device 338 could communicate
to workstation 307 or the network 308. In order to enable communication between remote
device 338 and workstation 307, controller 326 would establish a communication link
to remote device 338 by way of transceiver 336.
[0067] FIG. 9 shows the operation of the adaptive contactless energy transmission system
with communications capability. This embodiment is not covered by the scope of the
present invention.
[0068] After contactless power supply 305 starts (Step 400), it polls all remote devices
by way of transceiver 336. Step 402. Step 402 could be continuous, where advancement
to Step 404 occurs only if a remote device is present. Alternatively, the following
steps could be performed before polling is repeated, although the operations would
be performed with reference to a null set. If any remote device is present, it receives
power usage information from the remote device. Step 404.
[0069] The power usage information could include actual information regarding voltage, current,
and power requirements for remote device 338. Alternatively, power usage information
could be simply an ID number for remote device 338. If so, controller 326 would receive
the ID number and look up the power requirement for remote device 338 from a table
contained in memory 327.
[0070] After all devices have been polled and the power information for each device has
been received, contactless power supply 305 then determines whether any device is
no longer present If so, then a remote device list is updated. Step 408.
[0071] The remote device list maintained by controller 326 is shown in FIG. 10. The remote
device list could contain for a device ID, a voltage, a current, and a status for
each remote device 338, 340, 342 . The device number is assigned by controller 326.
The device ID is received from remote devices 338, 340, 342. If two remote devices
are the same type, then the device ID could be the same. The voltage and current are
the amount of voltage or current required to power the device. The voltage and current
could be transmitted discretely by remote devices 338, 340, 342, or they could be
obtained by using the device ID as a key to a database of remote devices maintained
in memory 327. The status is the current status of the device. For example, the device
status could be 'on', 'off', 'charging', etc.
[0072] Next, contactless power supply 305 determines whether the status of any device has
changed. Step 410. For example, remote device 338 could have a rechargeable battery.
When the rechargeable battery is fully charged, remote device 338 would no longer
need power. Thus, its status would change from "Charging" to "Off." If the status
of the device changes, then the remote device list is updated. Step 412.
[0073] Contactless power supply 305 then determines if any devices are present. Step 414.
If so, then the remote device list is updated. Step 416. The remote device list is
then checked. Step 418. If the list was not updated, the system then polls the devices
again, and the process restarts. Step 402.
[0074] If the list was updated, then the power usage by the remote devices has changed,
and thus the power supplied by contactless power supply 305 must also change. Controller
326 uses the remote device list to determine the power requirements of all the remote
devices. It then determines if the system can be reconfigured to adequately power
all the devices. Step 420.
[0075] If contactless power supply 305 can supply power to all of the remote devices, then
controller 326 calculates the settings for inverter frequency, duty cycle, resonant
frequency, and rail voltage. Further, controller determines the best setting for the
variable impedance of secondary winding 353 of remote devices 338, 340, 342. Step
422. It then sets the inverter frequency, duty cycle, resonant frequency, and rail
voltage. Step 424. It also instructs remote devices 338, 340, 342 to set the variable
impedance of secondary winding 353 to the desired level. Step 424.
[0076] On the other hand, if contactless power supply 305 cannot supply power to all of
the remote devices, controller 326 determines the best possible power settings for
the entire system. Step 426. It may then instruct one or more of remote devices 338,
340, 342 to turn off or change its power consumption. Controller determines the best
setting for the variable impedance of secondary winding 353 of remote devices 338,
340, 342. Step 428. It then sets the inverter frequency, duty cycle, resonant frequency,
and rail voltage for the system. Step 430. Controller instructs remote devices 338,
340, 342 to set the variable impedance of secondary winding 353 at the desired level.
The system then returns to polling the devices, and the process repeats. Step 402.
[0077] The above description is of the preferred embodiment. Various alterations and changes
can be made without departing from the scope of the invention as defined in the appended
claims.
1. A contactless power system for transmitting power from a contactless power supply
(305) to at least one remote device (306, 338, 340, 342), the contactless power supply
system comprising:
a controller (326);
an inverter (312), the inverter (312) having a duty cycle and an operating frequency;
a resonant circuit (314) coupled to the inverter (312), the resonant circuit (314)
having a resonant frequency and a primary (330, 332, 334) for transferring power to
the at least one remote device (306, 338, 340, 342);
a power source (310) coupled to the inverter (312), the power source having a rail
voltage;
a secondary (353) coupled to a load (350) in the at least one remote device (306,
338, 340, 342), the secondary inductively coupled to the primary, wherein a part of
at least one of the secondary and the primary is a communication coil for communicating
information;
a sensor (324) coupled to the tank circuit (314) generating a sensor output, the sensor
output coupled to the controller (326);
wherein the controller (326) is configured to control the duty cycle, the operating
frequency, the resonance frequency and the rail voltage and further configured to
control transfer of wireless power from the primary to the remote device (306, 338,
340, 342) by varying one or more among the duty cycle, the operating frequency, the
resonance frequency and the rail voltage, said controller further adapted to communicate
via the communication coil with the at least one remote device (306, 338, 340, 342).
2. The contactless power system of claim 1, wherein the part of the secondary is the
communication coil, and a part of the primary is another communication coil.
3. The contactless power system of claim 1, wherein the controller controls the transfer
of power to the remote device (306, 338, 340, 342) based on the information communicated
via the communication coil, wherein the information includes power usage information.
4. The contactless power system of claim 1, wherein information transferred via the communication
coil includes at least one of information received via the communication coil and
information transmitted via the communication coil.
5. The contactless power system of claim 1, wherein a part of the primary is the communication
coil and the primary includes a non-communication portion, and wherein the communication
coil and the non-communication portion are adapted to transfer power to the remote
device (306, 338, 340, 342).
6. The contactless power system of claim 1, further adapted to stablish a communication
link between a workstation (307) and the at least one remote device (306, 338, 340,
342), allowing information to be transmitted to and from the at least one remote device.
7. The contactless power system of claim 6 wherein the at least one remote device (306,
338, 340, 342) is a personal digital assistant configured to automatically synchronize
a calendar and an address list.
8. The contactless power system of claim 6 wherein the at least one remote device (306,
338, 340, 342) is a MP3 player configured to download songs to and from the MP3 player.
9. The contactless power system of claim 6 wherein the at least one remote device (306,
338, 340, 342) is a digital camera.
1. Kontaktloses Stromsystem zum Senden von Strom von einer kontaktlosen Stromversorgung
(305) an mindestens eine Fernvorrichtung (306, 338, 340, 342), wobei das kontaktlose
Stromversorgungssystem umfasst:
eine Steuerung (326);
einen Wechselrichter (312), wobei der Wechselrichter (312) einen Arbeitszyklus und
eine Betriebsfrequenz aufweist;
eine Resonanzschaltung (314), die mit dem Wechselrichter (312) gekoppelt ist, wobei
die Resonanzschaltung (314) eine Resonanzfrequenz und ein Primärelement (330, 332,
334) zum Übertragen von Strom an die mindestens eine Fernvorrichtung (306, 338, 340,
342) aufweist;
eine Stromquelle (310), die mit dem Wechselrichter (312) gekoppelt ist, wobei die
Stromquelle eine Schienenspannung aufweist;
ein Sekundärelement (353), das mit einer Last (350) in der mindestens einen Fernvorrichtung
(306, 338, 340, 342) gekoppelt ist, wobei das Sekundärelement induktiv mit dem Primärelement
gekoppelt ist, wobei ein Teil von mindestens einem des Sekundärelements und des Primärelements
eine Kommunikationsspule zum Kommunizieren von Informationen ist;
einen Sensor (324), der mit dem Tankkreis (314) gekoppelt ist, der einen Sensorausgang
erzeugt, wobei der Sensorausgang mit der Steuerung (326) gekoppelt ist;
wobei die Steuerung (326) konfiguriert ist, den Arbeitszyklus, die Betriebsfrequenz,
die Resonanzfrequenz und die Schienenspannung zu steuern und weiter konfiguriert ist,
Übertragung von drahtlosem Strom vom Primärelement an die Fernvorrichtung (306, 338,
340, 342) durch Variieren eines oder mehreres unter dem Arbeitszyklus, der Betriebsfrequenz,
der Resonanzfrequenz und der Schienenspannung zu steuern, wobei die Steuerung weiter
angepasst ist, über die Kommunikationsspule mit der mindestens einen Fernvorrichtung
(306, 338, 340, 342) zu kommunizieren.
2. Kontaktloses Stromsystem nach Anspruch 1, wobei der Teil des Sekundärelements die
Kommunikationsspule ist und ein Teil des Primärelements eine andere Kommunikationsspule
ist.
3. Kontaktloses Stromsystem nach Anspruch 1, wobei die Steuerung die Übertragung von
Strom an die Fernvorrichtung (306, 338, 340, 342) basierend auf den Informationen,
die über die Kommunikationsspule kommuniziert werden, steuert, wobei die Informationen
Stromverbrauchsinformationen enthalten.
4. Kontaktloses Stromsystem nach Anspruch 1, wobei Informationen, die über die Kommunikationsspule
übertragen werden, mindestens eines von Informationen, die über die Kommunikationsspule
empfangen werden, und Informationen, die über die Kommunikationsspule gesendet werden,
enthalten.
5. Kontaktloses Stromsystem nach Anspruch 1, wobei ein Teil des Primärelements die Kommunikationsspule
ist und das Primärelement einen Nicht-Kommunikationsabschnitt enthält, und wobei die
Kommunikationsspule und der Nicht-Kommunikationsabschnitt angepasst sind, Strom an
die Fernvorrichtung (306, 338, 340, 342) zu übertragen.
6. Kontaktloses Stromsystem nach Anspruch 1, weiter angepasst, eine Kommunikationsverbindung
zwischen einer Arbeitsstation (307) und der mindestens einen Fernvorrichtung (306,
338, 340, 342) einzurichten, was Informationen erlaubt, zu und von der mindestens
einen Fernvorrichtung gesendet zu werden.
7. Kontaktloses Stromsystem nach Anspruch 6, wobei die mindestens eine Fernvorrichtung
(306, 338, 340, 342) ein persönlicher digitaler Assistent ist, der konfiguriert ist,
automatisch einen Kalender und eine Adressliste zu synchronisieren.
8. Kontaktloses Stromsystem nach Anspruch 6, wobei die mindestens eine Fernvorrichtung
(306, 338, 340, 342) ein MP3-Player ist, der konfiguriert ist, Lieder zum und vom
MP3-Player herunterzuladen.
9. Kontaktloses Stromsystem nach Anspruch 6, wobei die mindestens eine Fernvorrichtung
(306, 338, 340, 342) eine Digitalkamera ist.
1. Système d'alimentation sans contact pour transmettre de l'électricité provenant d'une
alimentation sans contact (305) à au moins un dispositif à distance (306, 338, 340,
342), le système d'alimentation sans contact comprenant :
un dispositif de commande (326) ;
un onduleur (312), l'onduleur (312) ayant un cycle de service et une fréquence de
fonctionnement ;
un circuit de résonance (314) couplé à l'onduleur (312), le circuit de résonance (314)
ayant une fréquence de résonance et une bobine primaire (330, 332, 334) pour transférer
de l'électricité à l'au moins un dispositif à distance (306, 338, 340, 342) ;
une source d'électricité (310) couplée à l'onduleur (312), la source d'électricité
ayant une tension ;
une bobine secondaire (353) couplée à une charge (350) dans l'au moins un dispositif
à distance (306, 338, 340, 342), la bobine secondaire étant inductivement couplée
à la bobine primaire, dans laquelle une partie d'au moins une de la bobine secondaire
et de la bobine primaire est une bobine de communication pour communiquer des informations
;
un capteur (324) couplé au circuit de réservoir (314) générant une sortie de capteur,
la sortie de capteur étant couplée au dispositif de commande (326) ;
dans lequel le dispositif de commande (326) est configuré pour commander le cycle
de service, la fréquence de fonctionnement, la fréquence de résonance et la tension
et en outre configuré pour commander un transfert d'électricité sans fil depuis la
bobine primaire vers le dispositif à distance (306, 338, 340, 342) en faisant varier
un ou plusieurs parmi le cycle de service, la fréquence de fonctionnement, la fréquence
de résonance et la tension, ledit dispositif de commande étant en outre adapté pour
communiquer par l'intermédiaire de la bobine de communication avec l'au moins un dispositif
à distance (306, 338, 340, 342).
2. Système d'alimentation sans contact selon la revendication 1, dans lequel la partie
de la bobine secondaire est la bobine de communication, et une partie de la bobine
primaire est une autre bobine de communication.
3. Système d'alimentation sans contact selon la revendication 1, dans lequel le dispositif
de commande commande le transfert d'électricité vers le dispositif à distance (306,
338, 340, 342) sur la base des informations communiquées par l'intermédiaire de la
bobine de communication, dans lequel les informations incluent des informations d'utilisation
d'électricité.
4. Système d'alimentation sans contact selon la revendication 1, dans lequel des informations
transférées par l'intermédiaire de la bobine de communication incluent au moins une
parmi des informations reçues par l'intermédiaire de la bobine de communication et
des informations transmises par l'intermédiaire de la bobine de communication.
5. Système d'alimentation sans contact selon la revendication 1, dans lequel une partie
de la bobine primaire est la bobine de communication et la bobine primaire inclut
une portion de non-communication, et dans lequel la bobine de communication et la
portion de non-communication sont adaptées pour transférer de l'électricité au dispositif
à distance (306, 338, 340, 342).
6. Système d'alimentation sans contact selon la revendication 1, en outre adapté pour
établir un lien de communication entre un poste de travail (307) et l'au moins un
dispositif à distance (306, 338, 340, 342), permettant à des informations d'être transmises
à et depuis l'au moins un dispositif à distance.
7. Système d'alimentation sans contact selon la revendication 6, dans lequel l'au moins
un dispositif à distance (306, 338, 340, 342) est un assistant numérique personnel
configuré pour synchroniser automatiquement un calendrier et une liste d'adresses.
8. Système d'alimentation sans contact selon la revendication 6, dans lequel l'au moins
un dispositif à distance (306, 338, 340, 342) est un lecteur MP3 configuré pour télécharger
des chansons vers et depuis le lecteur MP3.
9. Système d'alimentation sans contact selon la revendication 6, dans lequel l'au moins
un dispositif à distance (306, 338, 340, 342) est un appareil photo numérique.